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| Section | Weight | Objectives |
|---|---|---|
| OpenAI Responses API and Agents SDK | 15% | - OpenAI agent stack
|
| Agentic AI for Oracle AI Database | 25% | - Oracle AI Database agentic AI capabilities
|
| Model Context Protocol (MCP) Fundamentals | 15% | - MCP architecture and integration
|
| LangChain for AI Agents | 5% | - LangChain fundamentals and agent construction
|
| OCI Enterprise AI Agents | 25% | - OCI Enterprise AI platform and agent services
|
| Introduction to AI Agents | 15% | - AI agent fundamentals
|
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NEW QUESTION # 21
Which standard MCP transport supports remote or network-accessible deployments where multiple clients may connect?
Answer: A
Explanation:
Streamable HTTP is the standard MCP transport intended for remote or network-accessible client-server communication. Current MCP architecture documentation distinguishes it from STDIO by explaining that Streamable HTTP uses HTTP POST for client-to-server communication and can optionally use Server-Sent Events for streaming. It enables communication with remote MCP servers and can support standard HTTP authentication mechanisms.
The MCP transport specification further establishes two standard transport mechanisms: stdio and Streamable HTTP . With STDIO, the client launches an MCP server as a local subprocess and exchanges JSON-RPC messages through standard input and standard output. That pattern is therefore most appropriate for local process integration. By comparison, a Streamable HTTP server operates as an independent service and can handle multiple client connections, making it suitable for centralized or cloud-hosted MCP deployments.
Raw TCP sockets and local Unix pipes are not the standard remote MCP transport defined by the protocol.
Therefore, C is correct and matches the supplied source material.
Study Guide reference/topic: Model Context Protocol (MCP) Fundamentals - STDIO versus Streamable HTTP transport and remote MCP deployment.
NEW QUESTION # 22
What is the purpose of OCI Enterprise AI Governance?
Answer: C
Explanation:
OCI Enterprise AI Governance provides the control framework required to operate generative and agentic AI workloads securely in enterprise environments. Oracle defines governance as a combination of infrastructure protection, access control, network security, and runtime safety mechanisms. Key capabilities include OCI IAM policies , which determine who can access and manage Generative AI resources; Private Endpoints , which prevent model traffic from requiring public network exposure; Zero Trust Packet Routing , which introduces identity-aware network enforcement; and Guardrails , which apply safety and compliance controls to model inputs and outputs.
Oracle Guardrails specifically support mechanisms including content moderation, prompt-injection detection, and personally identifiable information detection. These controls address AI-specific operational and security risks rather than model lifecycle rollback or performance optimization.
Therefore, option D accurately expresses the purpose of Enterprise AI Governance. Model version management, runtime implementation, and latency monitoring may be operational concerns in an AI platform, but they are not the principal governance function described by OCI. The uploaded examination source also identifies D as the correct answer.
Study Guide reference/topic: OCI Enterprise AI Agents - Enterprise AI Governance, IAM, Private Endpoints, Zero Trust Packet Routing, and Guardrails.
NEW QUESTION # 23
What is short-term memory compaction in OCI Enterprise AI Agents?
Answer: D
Explanation:
Short-term memory compaction is a mechanism for reducing an expanding conversation history into a smaller retained representation while preserving the important information needed for subsequent turns. The uploaded source characterizes this as a summarization process for long conversations , making B the intended answer.
Oracle's current OCI Generative AI documentation states that when conversation compaction is enabled, earlier chat history is automatically condensed as a conversation grows. The purpose is to retain relevant context while lowering token usage and reducing latency. The application can continue using the same conversation ID without manually rebuilding the condensed history.
Conceptually, compaction prevents long-running conversations from continually accumulating every earlier turn verbatim. Instead, previous material is compressed into a more concise memory representation that can still inform future model calls. This is a context-management feature rather than a security masking mechanism.
It also has nothing to do with optimizing Python tool execution or improving network routing. Those belong to separate runtime and infrastructure concerns.
Therefore, B is correct.
Study Guide reference/topic: OCI Enterprise AI Agents - Conversations API, short-term memory, conversation compaction, context retention, token optimization, and latency management.
NEW QUESTION # 24
What is the default distance metric for VECTOR_DISTANCE in Oracle for non-BINARY vectors?
Answer: C
Explanation:
Oracle AI Vector Search defines VECTOR_DISTANCE as the primary SQL function for calculating the distance between two vectors. When the function is called without explicitly specifying a distance metric, Oracle specifies COSINE as the default metric for ordinary, non-BINARY vectors. Cosine distance measures the angular relationship between vector representations and is widely used for semantic similarity because embeddings with similar meaning tend to point in similar directions in vector space. Oracle treats BINARY vectors differently: their default metric is HAMMING. Euclidean, or L2, distance is supported but must be selected when required; it is not the general default. Levenshtein distance applies to string-edit comparisons, while bitwise XOR is not the default Oracle vector-distance metric. Therefore, for the scenario stated in the question, option C is the verified answer. Oracle Docs
NEW QUESTION # 25
Which description defines memory poisoning in AI-agent systems?
Answer: C
Explanation:
Memory poisoning is an agent-security attack in which malicious, misleading, or attacker-controlled information is introduced into memory that the agent may reuse in future reasoning or actions. The uploaded course source defines it as malicious content inserted into persistent memory stores and identifies C as correct.
Oracle's current AI Agent Memory security guidance explains why persistent memory must be treated as a security-sensitive surface. Model-derived memories, summaries, context cards, metadata, and retrieved records can become persistent state and later be inserted into prompts. Oracle therefore advises treating memory-derived content as untrusted and emphasizes that write-capable memory paths can influence future prompts and retrieval results.
The broader agent-security definition is also explicit in OWASP's Agentic AI guidance: memory poisoning involves malicious data being persisted in agent memory so that it can influence future sessions or behaviors.
This differs from temporary context-window pressure, SQL injection, or physical RAM corruption. The essential security property is persistence : compromised memory can affect later reasoning long after the original malicious interaction.
Therefore, C is correct.
Study Guide reference/topic: Introduction to AI Agents - agent memory, persistent state, memory poisoning, prompt injection persistence, and agent security.
NEW QUESTION # 26
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